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1.
B. Khera  N.K. Kaushik 《Polyhedron》1984,3(5):611-613
A series of (C9H7)2Zr(OAr)Cl and (C9H7)2Zr(OAr)2 complexes, where Ar = C6H5, p-ClC6H4, α-C10H7, or β-C10H7, have been synthesised by the reaction of bis(indenyl)zirconium(IV)-dichloride with an appropriate phenol in a 1:1 and 1:2 molar ratio in refluxing benzene in the presence of triethylamine. These complexes have been characterised by elemental analyses, conductance measurements and spectral (IR, 1H NMR and electronic) studies.  相似文献   

2.
The new ruthenium(II) complex [(C8H10)RuCl2]n (1) (C8H10 = 1,3,5-cyclooctatriene; n ⩾ 2) has been obtained from the reaction of RuCl3·xH2O with 1,3,5,7-cyclooctatetraene in refluxing ethanol. Reduction of [(C8H10)RuCl2]n and [(C7H8)RuCl2]2 (2) (C7H8 = 1,3,5-cyclooctatriene) by Na/Hg amalgam in the presence of isoprene (C5H8) gives the novel ruthenium(O) complexes [(η6-C8H10)Ru(η4-C5H8)] (3) and [(η6-C7H8)Ru(η4-C5H8)] (4). [(η6-C7H8Ru(η4-C5H8)] reacts with CO and HBF4 to give [(η6-C7H8)Ru(η3-C5H9)(CO)][BF4] (C5H9 = trans-1,2-dimethylallyl (5a); 1,1-dimethylallyl (5b)).  相似文献   

3.
The intense purple colored bi- and trimetallic complexes {Ti}(CH2SiMe3)[CC(η6-C6H5)Cr(CO)3] (3) ({Ti}=(η5-C5H5)2Ti) and [Ti][CC(η6-C6H5)Cr(CO)3]2 (5) {[Ti]=(η5-C5H4SiMe3)2Ti}, in which next to a Ti(IV) center a Cr(0) atom is present, are accessible by the reaction of Li[CC(η6-C6H5)Cr(CO)3] (2) with {Ti}(CH2SiMe3)Cl (1) or [Ti]Cl2 (4) in a 1:1 or 2:1 molar ratio. The chemical and electrochemical properties of 3, 5, {Ti}(CH2SiMe3)(CCFc) [Fc=(η5-C5H5)Fe(η5-C5H4)] and [Ti][(CC)nMc][(CC)mM′c] [n, m=1, 2; n=m; nm; Mc=(η5-C5H5)Fe(η5-C5H4); M′c=(η5-C5H5)Ru(η5-C5H4); Mc=M′c; Mc≠M′c] will be comparatively discussed.  相似文献   

4.
The reaction of 2,6-dimethoxypyridine-3-carboxylic acid (DMPH) with different precursors [Ti(η5-C5H5)2Cl2], [Ti(η5-C5H4Me)2Cl2], [Ti(η5-C5H4SiMe3)(η5-C5H5)Cl2], [Ti(η5-C5Me5)Cl3], SnMe3Cl and GatBu3 yielded the complexes [Ti(η5-C5H5)2(DMP-κO)2] (1), [Ti(η5-C5H4Me)2(DMP-κO)2] (2), [Ti(η5-C5H4SiMe3)(η5-C5H5)(DMP-κO)2] (3), [Ti(η5-C5Me5)(DMP-κ2O,O′)3] (4), [SnMe3(μ-DMP-κOO′)] (5), and [GatBu2(μ-DMP-κOO′)]2 (6). 1-6 have been characterized by spectroscopic methods and the molecular structure of the complexes 1, 2, 3, 5 and 6 have been determined by X-ray diffraction studies. The cytotoxic activity of 1-6 was tested against the tumour cell lines human adenocarcinoma HeLa, human myelogenous leukaemia K562, human malignant melanoma Fem-x and human breast carcinoma MDA-MB-361. The results of this study show a higher cytotoxicity of the tin(IV) and gallium(III) derivatives in comparison to their titanium(IV) counterparts. Furthermore, the different titanium compounds showed differences in their cytotoxicities with a higher activity of complex 4 (mono-(cyclopentadienyl) derivative) compared to that of 1-3 (bis-(cyclopentadienyl) complexes). A qualitative UV-vis study of the interactions of these complexes with DNA has also been carried out.  相似文献   

5.
The 1∶2 molar reactions of tin(IV) chloride with the Schiff bases, CH3C(OH):CHC(CH3):NR and 2 HOC10H6CH:NR′ (where R=C2H5,n-C3H7 orn-C4H9 and R′=C6H5, C2H5,n-C4H9 ort-C4H9) have resulted in the synthesis of SnCl4·(SBH)2 type derivatives (whereSBH represents the Schiff base molecule). These have been characterized by elemental analysis, conductivity measurements and IR spectral studies.  相似文献   

6.
Reaction of bis(amide) sodium Na2[(1R,2R)-(−)-1,2-(NSiMe3)2-C6H10] (Na2[L1]) with Ti(OiPr)2Cl2 in different conditions gave mixed-ligand complexes [Ti(OiPr)Cl][L1] (1) or [Ti(OiPr)2Cl]2[L1] (2); 2 is a dinuclear titanium example in which Ti atoms are bridged by nitrogen and oxygen atoms simultaneously forming a distorted rhombic core. Reaction of the amine-amidinate ligand (1R,2R)-(−)-1-Li[NC(Ph)N(SiMe3)]-2-(NHSiMe3)-C6H10(Li[L2]) or rarely linked bis(amidinate) ligand Li2[(1R,2R)-(−)-1,2-{NC(Ph)N(SiMe3)}2-C6H10](Li2[L3]) with ZrCl4 yielded the unbridged and bridged bis(amidinate) complexes ZrCl2[L2]2 (3) and [ZrCl2(THF)][L3] (4), respectively; Moreover, the reaction of (1R,2R)-(−)-1-Li[NC(Ph)N(SiMe3)]-2-Li(NSiMe3)C6H10(Li2[L2]) with Ti(OiPr)2Cl2 gave a new type of tridentate amido-amidinate product [Ti(OiPr)2][L2] (6), which is a distinct model compared to [Ti(OiPr)2Cl][L2] (5) yielded from Li[L2]. All the products have been characterized by X-ray crystallography and the structural studies are presented detailedly comparing with relevant compounds.  相似文献   

7.
The cross-polarization magic angle spinning 13C NMR spectra of Hg(SbF6)2 - 2 Arene (Arene = C6HMe5, 1,2,4,5-C6H2Me4, 1,2,3,4-C6H2Me4, or C6H6) have been measured. The spectra of the complexes of C6HMe5 and 1,2,4,5-C6H2Me4 are consistent with static η1-bonding of the mercury to the arene at an unsubstituted carbon atom, while the spectra of the 1,2,3,4-C6H2Me4 and C6H6 complexes show the arene to have time-averaged Cs or C2, and C6 symmetry respectively, at the temperature of measurement (300 K).The reduced temperature 13C NMR spectra of Hg(Arene)n2+ (n = 1 or 2; Arene = 1,3,5-C6H3R3 (R = Me, i-Pr, or t-Bu)) in SO2 solution are also reported and affirm that in these intramolecularly mobile species the mercury bonds in an η1-manner, with unsubstituted aryl carbon atoms being the strongly preferred point of mercury attachment. This site preference is further demonstrated by the solution 13C NMR spectra of Hg(Arene)n2+ (Arene = 1,2,3,4-C6H2-Me4, n = 1 or 2; Arene = 1,4-C6H4R2, R = Me or t-Bu, n = 1). The spectra of the 1,4-C6H4R2 complexes and Hg(p-C6H4-t-BuMe)2+ provide clear evidence for steric influence of the binding site.Like Hg(C6Me6)22+, but unlike most of the complexes of substituted benzenes which have been studied, Hg(1,3,5-C6H3-i-Pr3)22+ exchanges only slowly with excess free ligand.  相似文献   

8.
Reaction of [{(R)-C20H12O2}Ti(OiPr)2] with 1,4-dithiaalkanediyl-2,2′-bis(6-tert-butyl-4-methyl-phenol) affords the chiral-at-metal complex [{(R)-C20H12O2}Ti{(C6H2O-tBu-6-Me-4)2S(CH2)2S}] (1) in low diastereomeric excess. Complex 1 can be partially hydrolyzed to give a dinuclear species [μ-{(R)-C20H12O2}-μ-O-{(Λ)-Ti[(C6H2O-tBu-6-Me-4)2S(CH2)2S]}2] (2), in which the two titanium centers are homochiral. The molecular structure of 1 and 2 was confirmed by single crystal X-ray analysis, which shows C2-symmetry in both complexes.  相似文献   

9.
Cp-functionalized monotroticenes [(η7-C7H7)Ti(η5-C5H4E)] (2, E = Ph2SiCl; 3, E = tBu2SnCl; 12, E = I) and bitroticenes [(η7-C7H7)Ti(η5-C5H4)]2E′ (5, E′ = PPh; 6, E′ = BN(SiMe3)2; 7, E′ = Cp2Ti) were prepared by salt elimination metathesis between the monolithiated troticene [(η7-C7H7)Ti(η5-C5H4Li)]·pmdta (1b) (pmdta = N,N′,N′,N″,N″-pentamethyldiethylene-triamine) and the appropriate electrophile. The troticenyl-substituted zirconocene monochloride [(η7-C7H7)Ti(η5-C5H4ZrClCp*2)] (Cp* = η5-C5Me5) (8) and hafnocene ethoxide [(η7-C7H7)Ti{η5-C5H4Hf(OEt)Cp2}] (Cp = η5-C5H5) (11), and the heterobimetallic μ-oxo complexes [(η7-C7H7)Ti(η5-C5H4MCp2)]2O (9, M = Zr; 10, M = Hf) were obtained instead of the expected zircona- and hafna[1]troticenophanes by reaction of the dilithiated troticene [(η7-C7H6Li)Ti(η5-C5H4Li)]·pmdta (1a) with [Cp2MCl2] (M = Zr, Hf) or [Cp*2ZrCl2] in stoichiometric amounts. These compounds were characterized by single crystal X-ray diffraction analyses and, in the case of 2, 3, 57, 9, 10 and 12, also by elemental analyses and 1H, 13C and 119Sn NMR spectroscopy. Exposure of the troticenyl organotin chloride 3 to moisture resulted in its partial hydrolysis and formation of the organostannoxane-bridged bitroticene 4, while palladium-catalyzed Negishi C–C cross-coupling reaction between the troticenylzinc chloride [(η7-C7H7)Ti(η5-C5H4ZnCl)] (13) and the iodotroticene 12 or iodobenzene (PhI) led to the fulvalene complexes [(η7-C7H7)Ti(η5-C5H4)]2 (14) and [(η7-C7H7)Ti(η5-C5H4Ph)] (15). Compound 4 displays an unsymmetrical structure with the troticenyl fragments cis with respect to the Sn–O–Sn core, whereas compound 14 is centrosymmetrically trans oriented.  相似文献   

10.
Triorganoantimony and Triorganobismuth Derivatives of 2-Pyridinecarboxylic Acid and 2-Pyridylacetic Acid. Crystal and Molecular Structures of (C6H5)3Sb(O2C-2-C5H4N)2 and (CH3)3Sb(O2CCH2-2-C5H4N)2 Triorganoantimony and triorganobismuth dicarboxylates R3M(O2C-2-C5H4N)2 (M = Sb, R = CH3, C6H5, 4-CH3OC6H4; M = Bi, R = C6H5, 4-CH3C6H4) and (CH3)3Sb(O2CCH2-2-C5H4N)2 have been prepared from (CH3)3Sb(OH)2, R3SbO (R = C6H5, 4-CH3OC6H4), or R3BiCO3 (R = C6H5, 4-CH3C6H4) and the appropriate heterocyclic carboxylic acid. Vibrational spectroscopic data indicate a trigonal bipyramidal environment of M the O(? C)-atoms of the carboxylate ligands being in the apical and three C atoms (of R) in the equatorial positions; in addition coordinative interaction occurs in the 2-pyridinecarboxylates between M and O(?C) of one and N of the other carboxylate ligand and in (CH3)3)Sb(O2CCH2-2-C5H4N)2 between Sb and O(?C) of both carboxylate ligands. (C6H5)3Sb(O2C-2-C5H4N)2/(CH3)3Sb(O2CCH2-2-C5H4N)2 crystallize monoclinic [space group P21/c/P21/n; a = 892.6(9)/1043.4(6), b = 1326.9(6)/3166.2(18), c = 2233.1(9)/1147.5(7) pm, β = 99.74(8)°/97.67(5)° Z = 4/8; d(calc.) = 1.522/1.553 × Mg m?3; Vcell = 2606.7 × 106/3757.0 × 106pm3, structure determination from 3798/4965 independent reflexions (F ≥ 4.0 σ(F))/(I ≥ 1.96 σ(I), R(unweighted) = 0.024/0.036]. Sb is bonding to three C6H5/CH3 groups in the equatorial plane [mean distances Sb? C: 212.2(3)/208.7(6) pm] and two carboxylate ligands via O in the apical positions [Sb? O distances: 218.5(2), 209.9(2)/212.1(3), 213.2(3) pm]. In (C6H5)3Sb(O2C-2-C5H4N)2 there is a short Sb? O(?C) and a short Sb? N contact [Sb? O: 272.1(2), Sb? N: 260.2(2) pm] and distoritions of the equatorial angles [C? Sb? C: 99.2(1)°, 158.2(1)°, 102.0(1).] and of the axial angle [O? Sb? O: 169.9(1)°], and in (CH3)3Sb(O2CCH2-2-C5H4N)2, which contains two different molecules in the asym-metric unit, there are two Sb? O(?C) contacts [Sb? O, mean: 302.2(4), and 310.7(4)pm, respectively] and distortions of the equatorial angles [C? Sb? C: 114.5(2)°, 132.4(3)° 113.1(2)°, and 123.9(3)° 115.5(2)°, 120.6(3)°, respectively] and of the axial angles [O? Sb? O: 174,9(1)°, 177.9(1)°, respectively].  相似文献   

11.
Dichlorobis(indenyl)-titanium(IV) and -zirconium(IV), (C9H7)2TiCl2 and (C9H7)2ZrCl2, react with bidentate Schiff bases such as salicylidene aniline, salicylidene-o-toluidine, salicylidene-m-toluidine and salicylidene-p-toluidine in a 1:1 molar ratio in refluxing tetrahydrofuran in the presence of triethylamine to yield complexes of the type (C9H7)2Ti(SB)Cl and (C9H7)2Zr(SB)Cl, respectively where SB is the anion of the corresponding Schiff base, SBH. The new derivatives have been characterised on the basis of their elemental analyses, conductance measurements and spectral (IR, 1H NMR and electronic) studies.  相似文献   

12.
Cp-functionalized monotroticenes [(η7-C7H7)Ti(η5-C5H4E)] (2, E = Ph2SiCl; 3, E = tBu2SnCl; 12, E = I) and bitroticenes [(η7-C7H7)Ti(η5-C5H4)]2E′ (5, E′ = PPh; 6, E′ = BN(SiMe3)2; 7, E′ = Cp2Ti) were prepared by salt elimination metathesis between the monolithiated troticene [(η7-C7H7)Ti(η5-C5H4Li)]·pmdta (1b) (pmdta = N,N′,N′,N″,N″-pentamethyldiethylene-triamine) and the appropriate electrophile. The troticenyl-substituted zirconocene monochloride [(η7-C7H7)Ti(η5-C5H4ZrClCp*2)] (Cp* = η5-C5Me5) (8) and hafnocene ethoxide [(η7-C7H7)Ti{η5-C5H4Hf(OEt)Cp2}] (Cp = η5-C5H5) (11), and the heterobimetallic μ-oxo complexes [(η7-C7H7)Ti(η5-C5H4MCp2)]2O (9, M = Zr; 10, M = Hf) were obtained instead of the expected zircona- and hafna[1]troticenophanes by reaction of the dilithiated troticene [(η7-C7H6Li)Ti(η5-C5H4Li)]·pmdta (1a) with [Cp2MCl2] (M = Zr, Hf) or [Cp*2ZrCl2] in stoichiometric amounts. These compounds were characterized by single crystal X-ray diffraction analyses and, in the case of 2, 3, 57, 9, 10 and 12, also by elemental analyses and 1H, 13C and 119Sn NMR spectroscopy. Exposure of the troticenyl organotin chloride 3 to moisture resulted in its partial hydrolysis and formation of the organostannoxane-bridged bitroticene 4, while palladium-catalyzed Negishi C–C cross-coupling reaction between the troticenylzinc chloride [(η7-C7H7)Ti(η5-C5H4ZnCl)] (13) and the iodotroticene 12 or iodobenzene (PhI) led to the fulvalene complexes [(η7-C7H7)Ti(η5-C5H4)]2 (14) and [(η7-C7H7)Ti(η5-C5H4Ph)] (15). Compound 4 displays an unsymmetrical structure with the troticenyl fragments cis with respect to the Sn–O–Sn core, whereas compound 14 is centrosymmetrically trans oriented.  相似文献   

13.
Thermal reaction of the chloroaryl-chloride complexes trans-(η5-C5Me5)Re(CO)2(ArCl)Cl (ArCl = 3-ClC6H4, 3-ClC6H3(4-Me) and 3,5-Cl2C6H3) in acetonitrile did not interconvert to the cis isomer, instead the complex ReCl(CO)2(NCMe)3 and the corresponding 5-ArCl-1,2,3,4,5-pentamethylcyclopentadiene were formed. Similar reductive elimination products were obtained when the starting rhenium complexes were reacted with trimethylphosphite in toluene.  相似文献   

14.
Reaction of chlorodiphenylphosphine with (η5-C5H5)(η7-C7H6Li)Ti gave (η5-C5H5)[η7-C7H6P(C6H5)2]Ti in good yields. This novel phosphinetitanium (II) derivative displaced one carbonyl of metal carbonyl complexes [Ni(CO)4, Fe(CO)5 and Mo(CO)6] to afford heterobimetallic complexes containing low valent titanium, and behaved as a poor electron-donating phosphine.  相似文献   

15.
Five binuclear half-sandwich cobalt complexes, [(η5-C5H4)Co(CO)I2]2SiMe2 (3), [(η5-C5H4)Co(S2C2B10H10)]2SiMe2 (4), [(η5-C5H4)]2Co22-S2C2B10H10)SiMe2 (5), [(η5-C5H3)CoI2](μ-I)[(η5-C5H3)Co(CO)I](SiMe2)2 (8), [(η5-C5H3)Co(S2C2B10H10)]2(SiMe2)2 (9), were successfully synthesized in moderate yield by the reactions of corresponding ligands, (C5H5)2SiMe2 (1) and (C5H4)2(SiMe2)2 (6), respectively. The molecular structures of 3, 5, 6, 8 and 9 was determined by X-ray crystallographic analysis, which distinctly depict various molecular structures containing the Cp rings and the metal centers with halide or 1,2-dicarba-closo-dodecaborane-1,2-dithiolato ligands. For the (η5-C5H4)2SiMe2 complexes, coordination of the fragments CpCo favors a exo conformation. With the rigid structure of the di-bridged ligand (C5H4)2(SiMe2)2, only cis isomers of the corresponding (η5-C5H3)2(Si2Me2)2 complexes are formed. All the complexes have been well characterized by elemental analysis, NMR and IR spectra.  相似文献   

16.
The synthesis of a new, paramagnetic closo-[(8-(-CH2CH2O)2-1,2-C2B9H10)(1′,2′-C2B9H11)-3,3′-Fe]0 (3) is reported. This compound can serve as a versatile building block for construction of both anionic and zwitterionic derivatives, as exemplified by the synthesis of a series of compounds of general formula closo-[(8-X-(CH2CH2O)2-1,2-C2B9H10)(1′,2′-C2B9H11)-3,3′-Fe], bearing organic end groups (X = NC5H5 (4), (C6H5)3P (5), OH (6), and 2-O(1-CH3O-C6H4) (7)) attached to the cluster by a diethyleneglycol spacer. Molecular structures of 3, 4, 5 and 7 were determined by single-crystal X-ray diffraction analysis and by the long-time neglected method of paramagnetic, high field NMR (1H, 13C and 11B) spectroscopy.  相似文献   

17.
Reactions of 3,6-bis(2-pyridyl)-4-phenylpyridazine (Lph) with [(η6-arene)Ru(μ-Cl)Cl]2 (arene = C6H6, p-iPrC6H4Me and C6Me6), [(η5-C5Me5)M(μ-Cl)Cl]2, (M = Rh and Ir) and [(η5-Cp)Ru(PPh3)2Cl] (Cp = C5H5, C5Me5 and C9H7) afford mononuclear complexes of the type [(η6-arene)Ru(Lph)Cl]PF6, [(η5-C5Me5)M(Lph)Cl]PF6 and [(Cp)Ru(Lph)(PPh3)]PF6 with different structural motifs depending on the π-acidity of the ligand, electronic properties of the central metal atom and nature of the co-ligands. Complexes [(η6-C6H6)Ru(Lph)Cl]PF61, [(η6-p-iPrC6H4Me)Ru(Lph)Cl]PF62, [(η5-C5Me5)Ir(Lph)Cl]PF65, [(η5-Cp)Ru(PPh3)(Lph)]PF6, (Cp = C5H5, 6; C5Me5, 7; C9H7, 8) show the type-A binding mode (see text), while complexes [(η6-C6Me6)Ru(Lph)Cl]PF63 and [(η5-C5Me5)Rh(Lph)Cl]PF64 show the type-B binding mode (see text). These differences reflect the more electron-rich character of the [(η6-C6Me6)Ru(μ-Cl)Cl]2 and [(η5-C5Me5)Rh(μ-Cl)Cl]2 complexes compared to the other starting precursor complexes. Binding modes of the ligand Lph are determined by 1H NMR spectroscopy, single-crystal X-ray analysis as well as evidence obtained from the solid-state structures and corroborated by density functional theory calculations. From the systems studied here, it is concluded that the electron density on the central metal atom of these complexes plays an important role in deciding the ligand binding sites.  相似文献   

18.
Compounds (Bu4N)[2-B10H9{NH=C(NHR)CH3}] are obtained by reactions of the tetrabutylammonium salt of the [2-B10H9(N≡CCH3)] anion with aliphatic and aromatic primary amines RNH2 (R = n-C3H7, n-C4H9, cyclo-C5H9, C6H5, cyclo-C6H11, n-C6H13, C7H7, C8H8NH2, C6H4NO2, and C18H37) and identified by IR, ESI/MS, and NMR (1H, 11B, and 13C) spectroscopy. The structures of the amidine-type derivatives [2-B10H9{Z-NH=C(NH-cyclo-C5H9)CH3}] and [2-B10H9{Z-NH=C(NH-C7H7)CH3}] are determined by X-ray diffraction.  相似文献   

19.
The complexes of trans-[Co(III)(R,CH3-dioxH)2(py)2]I2 (R = CH3, C2H5, n-C3H7 and n-C4H9) were investigated in solution by 1H and 13C NMR spectra and 13C spin-lattice relaxation time measurements. The 1H and 13C-resonances of the R = C2H5, n-C3H7 and n-C4H9) groups were shifted to higher field than those of the free ligands by the complexation; it was attributable to the ring current shielding due to the axial pyridine ligands of the complexes. 13C spin-lattice relaxation times were interpreted as due to movement of the axial pyridine ligands as if they twist around the CoN (pyridine nitrogen) bond axis and the above R groups were moving segmentally. These segmental movements allowed the R groups to approach closely toward the axial pyridine ring plane to experience the ring current shielding.  相似文献   

20.
Reactions of the Cycloheptatrienyl Complexes [η7-C7H7W(CO)3]BF4 and η7-C7H7Mo(CO)2Br with Neutral Ligands and the Electrochemical Reduction of the Wolfram Complex Compounds of the type [η7-C7H7M(CO)2L][BF4] (L = P(C6H5)3, As(C6H5)3, Sb(C6H5)3 for M = W and L = N2H4 for M = Mo) were synthesized and characterisized. The iodide η7-C7H7W(CO)2I reacts with the diphosphine ((C6H5)2PCH2)2 to give the trihapto complex η3-C7H7 W(CO)2I((C6H5)2PCH2)2. In the case of η7-C7H7Mo(CO)2 Br reaction with hydrazine leads to the substitution product [η7-C7H7 Mo(CO)2N2H4], which can be stabilized by large anions. The binuclear complex [C7H7W(CO)3]2 has been synthesized electrochemically.  相似文献   

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